1 // SPDX-License-Identifier: 0BSD 2 3 /////////////////////////////////////////////////////////////////////////////// 4 // 5 /// \file block_encoder.c 6 /// \brief Encodes .xz Blocks 7 // 8 // Author: Lasse Collin 9 // 10 /////////////////////////////////////////////////////////////////////////////// 11 12 #include "block_encoder.h" 13 #include "filter_encoder.h" 14 #include "check.h" 15 16 17 typedef struct { 18 /// The filters in the chain; initialized with lzma_raw_decoder_init(). 19 lzma_next_coder next; 20 21 /// Encoding options; we also write Unpadded Size, Compressed Size, 22 /// and Uncompressed Size back to this structure when the encoding 23 /// has been finished. 24 lzma_block *block; 25 26 enum { 27 SEQ_CODE, 28 SEQ_PADDING, 29 SEQ_CHECK, 30 } sequence; 31 32 /// Compressed Size calculated while encoding 33 lzma_vli compressed_size; 34 35 /// Uncompressed Size calculated while encoding 36 lzma_vli uncompressed_size; 37 38 /// Position in the Check field 39 size_t pos; 40 41 /// Check of the uncompressed data 42 lzma_check_state check; 43 } lzma_block_coder; 44 45 46 static lzma_ret 47 block_encode(void *coder_ptr, const lzma_allocator *allocator, 48 const uint8_t *restrict in, size_t *restrict in_pos, 49 size_t in_size, uint8_t *restrict out, 50 size_t *restrict out_pos, size_t out_size, lzma_action action) 51 { 52 lzma_block_coder *coder = coder_ptr; 53 54 // Check that our amount of input stays in proper limits. 55 if (LZMA_VLI_MAX - coder->uncompressed_size < in_size - *in_pos) 56 return LZMA_DATA_ERROR; 57 58 switch (coder->sequence) { 59 case SEQ_CODE: { 60 const size_t in_start = *in_pos; 61 const size_t out_start = *out_pos; 62 63 const lzma_ret ret = coder->next.code(coder->next.coder, 64 allocator, in, in_pos, in_size, 65 out, out_pos, out_size, action); 66 67 const size_t in_used = *in_pos - in_start; 68 const size_t out_used = *out_pos - out_start; 69 70 if (COMPRESSED_SIZE_MAX - coder->compressed_size < out_used) 71 return LZMA_DATA_ERROR; 72 73 coder->compressed_size += out_used; 74 75 // No need to check for overflow because we have already 76 // checked it at the beginning of this function. 77 coder->uncompressed_size += in_used; 78 79 // Call lzma_check_update() only if input was consumed. This 80 // avoids null pointer + 0 (undefined behavior) when in == 0. 81 if (in_used > 0) 82 lzma_check_update(&coder->check, coder->block->check, 83 in + in_start, in_used); 84 85 if (ret != LZMA_STREAM_END || action == LZMA_SYNC_FLUSH) 86 return ret; 87 88 assert(*in_pos == in_size); 89 assert(action == LZMA_FINISH); 90 91 // Copy the values into coder->block. The caller 92 // may use this information to construct Index. 93 coder->block->compressed_size = coder->compressed_size; 94 coder->block->uncompressed_size = coder->uncompressed_size; 95 96 coder->sequence = SEQ_PADDING; 97 } 98 99 // Fall through 100 101 case SEQ_PADDING: 102 // Pad Compressed Data to a multiple of four bytes. We can 103 // use coder->compressed_size for this since we don't need 104 // it for anything else anymore. 105 while (coder->compressed_size & 3) { 106 if (*out_pos >= out_size) 107 return LZMA_OK; 108 109 out[*out_pos] = 0x00; 110 ++*out_pos; 111 ++coder->compressed_size; 112 } 113 114 if (coder->block->check == LZMA_CHECK_NONE) 115 return LZMA_STREAM_END; 116 117 lzma_check_finish(&coder->check, coder->block->check); 118 119 coder->sequence = SEQ_CHECK; 120 121 // Fall through 122 123 case SEQ_CHECK: { 124 const size_t check_size = lzma_check_size(coder->block->check); 125 lzma_bufcpy(coder->check.buffer.u8, &coder->pos, check_size, 126 out, out_pos, out_size); 127 if (coder->pos < check_size) 128 return LZMA_OK; 129 130 memcpy(coder->block->raw_check, coder->check.buffer.u8, 131 check_size); 132 return LZMA_STREAM_END; 133 } 134 } 135 136 return LZMA_PROG_ERROR; 137 } 138 139 140 static void 141 block_encoder_end(void *coder_ptr, const lzma_allocator *allocator) 142 { 143 lzma_block_coder *coder = coder_ptr; 144 lzma_next_end(&coder->next, allocator); 145 lzma_free(coder, allocator); 146 return; 147 } 148 149 150 static lzma_ret 151 block_encoder_update(void *coder_ptr, const lzma_allocator *allocator, 152 const lzma_filter *filters lzma_attribute((__unused__)), 153 const lzma_filter *reversed_filters) 154 { 155 lzma_block_coder *coder = coder_ptr; 156 157 if (coder->sequence != SEQ_CODE) 158 return LZMA_PROG_ERROR; 159 160 return lzma_next_filter_update( 161 &coder->next, allocator, reversed_filters); 162 } 163 164 165 extern lzma_ret 166 lzma_block_encoder_init(lzma_next_coder *next, const lzma_allocator *allocator, 167 lzma_block *block) 168 { 169 lzma_next_coder_init(&lzma_block_encoder_init, next, allocator); 170 171 if (block == NULL) 172 return LZMA_PROG_ERROR; 173 174 // The contents of the structure may depend on the version so 175 // check the version first. 176 if (block->version > 1) 177 return LZMA_OPTIONS_ERROR; 178 179 // If the Check ID is not supported, we cannot calculate the check and 180 // thus not create a proper Block. 181 if ((unsigned int)(block->check) > LZMA_CHECK_ID_MAX) 182 return LZMA_PROG_ERROR; 183 184 if (!lzma_check_is_supported(block->check)) 185 return LZMA_UNSUPPORTED_CHECK; 186 187 // Allocate and initialize *next->coder if needed. 188 lzma_block_coder *coder = next->coder; 189 if (coder == NULL) { 190 coder = lzma_alloc(sizeof(lzma_block_coder), allocator); 191 if (coder == NULL) 192 return LZMA_MEM_ERROR; 193 194 next->coder = coder; 195 next->code = &block_encode; 196 next->end = &block_encoder_end; 197 next->update = &block_encoder_update; 198 coder->next = LZMA_NEXT_CODER_INIT; 199 } 200 201 // Basic initializations 202 coder->sequence = SEQ_CODE; 203 coder->block = block; 204 coder->compressed_size = 0; 205 coder->uncompressed_size = 0; 206 coder->pos = 0; 207 208 // Initialize the check 209 lzma_check_init(&coder->check, block->check); 210 211 // Initialize the requested filters. 212 return lzma_raw_encoder_init(&coder->next, allocator, block->filters); 213 } 214 215 216 extern LZMA_API(lzma_ret) 217 lzma_block_encoder(lzma_stream *strm, lzma_block *block) 218 { 219 lzma_next_strm_init(lzma_block_encoder_init, strm, block); 220 221 strm->internal->supported_actions[LZMA_RUN] = true; 222 strm->internal->supported_actions[LZMA_SYNC_FLUSH] = true; 223 strm->internal->supported_actions[LZMA_FINISH] = true; 224 225 return LZMA_OK; 226 } 227